INNOVATIVE PHYSICAL TECHNIQUES IN FREEZE-DRYING
Abstract and keywords
Abstract (English):
Malnutrition is a global problem that is caused by insufficient sources of vitamins, microelements, and other nutrients. This creates a need for developing long-term preservation techniques. One of the solutions is to pre-treat food materials before freeze-drying by applying advanced and safe electrophysical techniques instead of traditional thermomechanical methods. We reviewed three of the most promising electrophysical techniques (low-temperature plasma, ultrasound, and pulsed electric field) which have proven effective for a wide range of food materials. In particular, we focused on their mechanism of action and the equipment required, drawing on successful laboratory and large-scale studies in Russia and abroad. The electrophysical techniques under review had an etching effect on the material, caused electroporation, and changed the material’s internal structure. In addition to these effects, we described their process and technology, as well as their advantages and disadvantages in industrial applications. Based on literature analysis, we stressed the importance of developing innovative electrophysical techniques for the food industry. These techniques should ensure high energy efficiency of the freeze-drying process and maintain good quality characteristics of food products.

Keywords:
Freeze-drying, physical treatment, food product, ultrasound, pulsed electric field, low-temperature plasma
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References

1. Egorov EA, Kuizheva SK, Lisovaya EV, Viktorova EP. The current state and prospects for the development of food production and food additives in the Russian Federation. New Technologies. 2022;18(2):53–61. (In Russ.). https://doi.org/10.47370/2072-0920-2022-18-2-53-61; https://elibrary.ru/UJTLUY

2. Shorstkii IA. Use of electrophysical methods when processing oil raw materials. Izvestiya vuzov. Food Technology. 2019;(4):11–16. (In Russ.). https://doi.org/10.26297/0579-3009.2019.4.3; https://elibrary.ru/PIFPWV

3. Artyukhova SI, Kozlova OV, Tolstoguzova TT. Developing freeze-dried bioproducts for the Russian military in the Arctic. Foods and Raw Materials. 2019;7(1):202–209. https://doi.org/10.21603/2308-4057-2019-1-202-209

4. Waghmare R, Kumar M, Yadav R, Mhatre P, Sonawane S, Sharma S, et al. Application of ultrasonication as pre-treatment for freeze drying: An innovative approach for the retention of nutraceutical quality in foods. Food Chemistry. 2023;404:134571. https://doi.org/10.1016/j.foodchem.2022.134571

5. Semenov GV, Krasnova IS. Freeze-drying. Moscow: DeLi; 2021. 325 p. (In Russ.).

6. Menon A, Stojceska V, Tassou SA. A systematic review on the recent advances of the energy efficiency improvements in non-conventional food drying technologies. Trends in Food Science and Technology. 2020;100:67–76. https://doi.org/10.1016/j.tifs.2020.03.014

7. Semenov GV, Bulkin AB, Kuzenkov MS. Modern research trends and technical solutions for the intensification of the process of freeze-drying in the food industry, pharmaceutical production and applied biotechnology (Part 1). Processes and Food Production Equipment. 2015;(1):187–202. (In Russ.). https://elibrary.ru/TIJTMH

8. Semenov GV, Ermakov SA, Krasnova IS. Vacuum freeze drying of food products: Temperature limits for rational use in industrial production. Izvestiya vuzov. Food Technology. 2022;(2–3):51–57. (In Russ.). https://doi.org/10.26297/0579-3009.2022.2-3.10; https://elibrary.ru/BZOIXG

9. Gorobtsov EI. The development of energy saving technology for the fruit and fruit crop sublimation drying using microwave and ultrasonic radiation. Bulletin of KSAU. 2013;(10):235–239. (In Russ.). https://elibrary.ru/RDCOPD

10. Belwal T, Cravotto C, Prieto MA, Venskutonis PR, Dagila M, Devkota HP, et al. Effects of different drying techniques on the quality and bioactive compounds of plant-based products: A critical review on current trends. Drying Technology. 2022;40(8):1539–1561. https://doi.org/10.1080/07373937.2022.2068028

11. Antipov ST, Shakhov AS. Modelling of the granular products vacuum freeze-dried process. Proceedings of the Voronezh State University of Engineering Technologies. 2016;(3):56–60. (In Russ.). https://doi.org/10.20914/2310-1202-2016-3-56-60; https://elibrary.ru/XWNJWF

12. Deng L-Z, Pan Z, Mujumdar AS, Zhao J-H, Zheng Z-A, Gao Z-J, et al. High-humidity hot air impingement blanching (HHAIB) enhances drying quality of apricots by inactivating the enzymes, reducing drying time and altering cellular structure. Food Control. 2019;96:104–111. https://doi.org/10.1016/j.foodcont.2018.09.008

13. Yadav AK, Singh SV. Osmotic dehydration of fruits and vegetables: A review. Journal of Food Science and Technology. 2014;51:1654–1673. https://doi.org/10.1007/s13197-012-0659-2

14. Prosapio V, Norton I. Influence of osmotic dehydration pre-treatment on oven drying and freeze drying performance. LWT. 2017;80:401–408. https://doi.org/10.1016/j.lwt.2017.03.012

15. Bhatta S, Janezic TS, Ratti C. Freeze-drying of plant-based foods. Foods. 2020;9(1):87. https://doi.org/10.3390/foods9010087

16. Pan Y, Cheng J-H, Sun D-W. Cold plasma-mediated treatments for shelf life extension of fresh produce: A review of recent research developments. Comprehensive Reviews in Food Science and Food Safety. 2019;18(5):1312–1326. https://doi.org/10.1111/1541-4337.12474

17. Du Y, Yang F, Yu H, Xie Y, Yao W. Improving food drying performance by cold plasma pretreatment: A systematic review. Comprehensive Reviews in Food Science and Food Safety. 2022;21(5):4402–4421. https://doi.org/10.1111/1541-4337.13027

18. Tarasov A, Bochkova A, Muzyukin I, Chugunova O, Stozhko N. The effect of pre-treatment of arabica coffee beans with cold atmospheric plasma, microwave radiation, slow and fast freezing on antioxidant activity of aqueous coffee extract. Applied Sciences. 2022;12(12):5780. https://doi.org/10.3390/app12125780

19. Shorstkii I, Mounassar EHA. Atmospheric microplasma treatment based on magnetically controlled Fe–Al dynamic platform for organic and biomaterials surface modification. Coatings. 2023;13(8):1362. https://doi.org/10.3390/coatings13081362

20. Vasilyev MM, Naumov EV, Petrov OF, Gladysheva OV, Gureeva EV, Ushakova EYu, et al. The increase of cereal crops resistance to frost, low temperature and moisture deficit after low-temperature plasma treatment of the seeds. Agrochemistry and Ecology Problems. 2016;(2):26–33. (In Russ.). https://elibrary.ru/WICCZZ

21. Li J, Zhou Y, Lu W. Enhancement of haskap vacuum freeze-drying efficiency and quality attributes using cold plasma pretreatment. Food and Bioprocess Technology. 2023;17:1059–1071. https://doi.org/10.1007/s11947-023-03186-y

22. Warne GR, Lim M, Wilkinson K, Hessel V, Williams PM, Coad B, et al. Radiofrequency cold plasma – A novel tool for flavour modification in fresh and freeze-dried strawberries. Innovative Food Science and Emerging Technologies. 2023;90:103497. https://doi.org/10.1016/j.ifset.2023.103497

23. Liu Q, Wu H, Luo J, Liu J, Zhao S, Hu Q, et al. Effect of dielectric barrier discharge cold plasma treatments on flavor fingerprints of brown rice. Food Chemistry. 2021;352:129402. https://doi.org/10.1016/j.foodchem.2021.129402

24. Loureiro AC, Souza FCA, Sanches EA, Bezerra JA, Lamarão CV, Rodrigues S, et al. Cold plasma technique as a pretreatment for drying fruits: Evaluation of the excitation frequency on drying process and bioactive compounds. Food Research International. 2021;147:110462. https://doi.org/10.1016/j.foodres.2021.110462

25. Shishir MRI, Karim N, Bao T, Gowd V, Ding T, Sun C, et al. Cold plasma pretreatment – A novel approach to improve the hot air drying characteristics, kinetic parameters, and nutritional attributes of shiitake mushroom. Drying Technology. 2020;38(16):2134–2150. https://doi.org/10.1080/07373937.2019.1683860

26. Zhang X-L, Zhong C-S, Mujumdar AS, Yang X-H, Deng L-Z, Wang J, et al. Cold plasma pretreatment enhances drying kinetics and quality attributes of chili pepper (Capsicum annuum L.). Journal of Food Engineering. 2019;241:51–57. https://doi.org/10.1016/j.jfoodeng.2018.08.002

27. Du Y, Yang F,Yu H, Xie Y,Yoa W. Improving food drying performance by cold plasma pretreatment: A systematic review. Comprehensive Reviews in Food Science and Food Safety. 2022;(5). https://doi.org/10.1111/1541-4337.13027

28. Sosnin MD, Shorstkii IA. Cold atmospheric gas plasma processing of apple slices. Food Processing: Techniques and Technology. 2023;53(2):368–383. (In Russ.). https://doi.org/10.21603/2074-9414-2023-2-2442; https://elibrary.ru/WPBYMS

29. Miraei Ashtiani S-H, Rafiee M, Mohebi Morad M, Khojastehpour M, Khani MR, Rohani A, et al. Impact of gliding arc plasma pretreatment on drying efficiency and physicochemical properties of grape. Innovative Food Science and Emerging Technologies. 2020;63:102381. https://doi.org/10.1016/j.ifset.2020.102381

30. Shorstkii IA, Mounassar EH. Effect of low current cold atmospheric plasma on grains surface structure and water absorption capacity. Proceedings of the Voronezh State University of Engineering Technologies. 2023;85(2):23–31. (In Russ.). https://doi.org/10.20914/2310-1202-2023-2-23-31; https://elibrary.ru/QOSXAQ

31. Dharini M, Jaspin S, Mahendran R. Cold plasma reactive species: Generation, properties, and interaction with food biomolecules. Food Chemistry. 2023;405:134746. https://doi.org/10.1016/j.foodchem.2022.134746

32. Khudyakov DA, Shorstkii IA, Ulyanenko EE, Gnuchykh EV. Influences of cold atmospheric plasma pretreatment on drying kinetics, structural, fractional and chemical characteristics of tobacco leaves. Drying Technology. 2022;40(15):3285–3291. https://doi.org/10.1080/07373937.2021.2021230

33. Ahmadian S, Esmaeilzadeh Kenari R, Raftani Amiri Z, Sohbatzadeh F, Haddad Khodaparast MH. Effect of ultrasound-assisted cold plasma pretreatment on cell wall polysaccharides distribution and extraction of phenolic compounds from hyssop (Hyssopus officinalis L.). International Journal of Biological Macromolecules. 2023;233:123557. https://doi.org/10.1016/j.ijbiomac.2023.123557

34. Huang C-C, Wu JS-B, Wu J-S, Ting Y. Effect of novel atmospheric-pressure jet pretreatment on the drying kinetics and quality of white grapes. Journal of The Science of Food and Agriculture. 2019;99:5102–5111. https://doi.org/10.1002/jsfa.9754

35. Campêlo RA, Casanova MA, Guedes DO, Laender AHF. A brief survey on replica consistency in cloud environments. Journal of Internet Services and Applications. 2020;11:1.

36. Zhou Y-H, Vidyarthi SK, Zhong C-S, Zheng Z-A, An Y, Wang J, et al. Cold plasma enhances drying and color, rehydration ratio and polyphenols of wolfberry via microstructure and ultrastructure alteration. LWT. 2020;134:110173. https://doi.org/10.1016/j.lwt.2020.110173

37. Cao Y, Hua H, Yang P, Chen M, Chen W, Wang S, et al. Investigation into the reaction mechanism underlying the atmospheric low-temperature plasma-induced oxidation of cellulose. Carbohydrate Polymers. 2020;233:115632. https://doi.org/10.1016/j.carbpol.2019.115632

38. Saengrayap R, Tansakul A, Mittal GS. Effect of far-infrared radiation assisted microwave-vacuum drying on drying characteristics and quality of red chilli. Journal of Food Science and Technology. 2015;52:2610–2621. https://doi.org/10.1007/s13197-014-1352-4

39. Sosnin MD, Shorstky IA. Evaluation of hydrodynamic flows of cellular fluid in artificially formed continuums of plant material structure. New Technologies. 2023;19(2):72–82. (In Russ.). https://doi.org/10.47370/2072-0920-2023-19-2-72-82; https://elibrary.ru/WOXLIV

40. Khudyakov D, Sosnin M, Shorstkii I, Okpala COR. Cold filamentary microplasma pretreatment combined with infrared dryer: Effects on drying efficiency and quality attributes of apple slices. Journal of Food Engineering. 2022;329:111049. https://doi.org/10.1016/j.jfoodeng.2022.111049

41. Chen Y-Q, Cheng J-H, Sun D-W. Chemical, physical and physiological quality attributes of fruit and vegetables induced by cold plasma treatment: Mechanisms and application advances. Critical Reviews in Food Science and Nutrition. 2020;60(16):2676–2690. https://doi.org/10.1080/10408398.2019.1654429

42. Klockow PA, Keener KM. Safety and quality assessment of packaged spinach treated with a novel ozone-generation system. LWT – Food Science and Technology. 2009;42(6):1047–1053. https://doi.org/10.1016/j.lwt.2009.02.011

43. Almazova KI, Belonogov AN, Borovkov VV, Gorelov EV, Dubinov AE, Morozov IV, et al. dynamics of gliding arc climbing in a unipolar Jacob’s ladder. Technical Physics. 2020;90(7):1076–1079. (In Russ.). https://doi.org/10.21883/JTF.2020.07.49439.408-19; https://elibrary.ru/GRLTGZ

44. Meliboyev M, Mamatov S, Ergashev O, Eshonturaev A. Improving of the process freeze drying of plums. In: Khasanov SZ, Muratov A, Ignateva S, editors. Fundamental and applied scientific research in the development of Agriculture in the Far East (AFE-2022). Agricultural cyber-physical systems, Volume 2. Cham: Springer; 2023. pp. 173–179. https://doi.org/10.1007/978-3-031-36960-5_21

45. Equipment for the preparation of food raw materials [Internet]. [cited 2023 Dec 10]. Available from: https://tehplasma.ru

46. Hernández-Torres CJ, Reyes-Acosta YK, Chávez-González ML, Dávila-Medina MD, Verma DK, Martínez-Hernández JL, et al. Recent trends and technological development in plasma as an emerging and promising technology for food biosystems. Saudi Journal of Biological Sciences. 2022;29(4):1957–1980. https://doi.org/10.1016/j.sjbs.2021.12.023

47. Pańka D, Jeske M, Łukanowski A, Baturo-Cieśniewska A, Prus P, Maitah M, et al. Can cold plasma be used for boosting plant growth and plant protection in sustainable plant production? Agronomy. 2022;12(4):841. https://doi.org/10.3390/agronomy12040841

48. Mokhova E, Gordienko M, Menshutina N, Gurskiy I, Tvorogova A. Ultrasonic freezing of polymers of various compositions before freeze drying: Effect of ultrasound on freezing kinetics and ice crystal size. Drying Technology. 2023;41(10):1663–1685. https://doi.org/10.1080/07373937.2023.2173226

49. Cao X, Zhang M, Mujumdar AS, Zhong Q, Wang Z. Effects of ultrasonic pretreatments on quality, energy consumption and sterilization of barley grass in freeze drying. Ultrasonics Sonochemistry. 2018;40:333–340. https://doi.org/10.1016/j.ultsonch.2017.06.014

50. Cheng X, Zhang M, Xu B, Adhikari B, Sun J. The principles of ultrasound and its application in freezing related processes of food materials: A review. Ultrasonics Sonochemistry. 2015;27:576–585. http://dx.doi.org/10.1016/j.ultsonch.2015.04.015

51. Schössler K, Jäger H, Knorr D. Novel contact ultrasound system for the accelerated freeze-drying of vegetables. Innovative Food Science and Emerging Technologies. 2012;16:113–120. https://doi.org/10.1016/j.ifset.2012.05.010

52. Xu B, Chen J, Sylvain Tiliwa E, Yan W, Roknul Azam SM, Yuan J, et al. Effect of multi-mode dual-frequency ultrasound pretreatment on the vacuum freeze-drying process and quality attributes of the strawberry slices. Ultrasonics Sonochemistry. 2021;78:105714. https://doi.org/10.1016/j.ultsonch.2021.105714

53. Semenov GV, Krasnova IS, Khvylia SI, Balabolin DN. Freezing and freeze-drying of strawberries with an additional effect of micro-vibrations. Journal of Food Science and Technology. 2021;58:3192–3198. https://doi.org/10.1007/s13197-020-04822-7

54. Ren Z, Bai Y. Ultrasound pretreatment of apple slice prior to vacuum freeze drying. Advances in Engineering Research. 2018;169:112–117. https://doi.org/10.2991/mseee-18.2018.20

55. Ciurzyńska A, Falacińska J, Kowalska H, Kowalska J, Galus S, Marzec A, et al. The effect of pre-treatment (Blanching, ultrasound and freezing) on quality of freeze-dried red beets. Foods. 2021;10(1):132. https://doi.org/10.3390/foods10010132

56. Islam MN, Zhang M, Liu H, Xinfeng C. Effects of ultrasound on glass transition temperature of freeze-dried pear (Pyrus pyrifolia) using DMA thermal analysis. Food and Bioproducts Processing. 2015;94:229–238. https://doi.org/10.1016/j.fbp.2014.02.004

57. Ergün AR. The effects of electric field and ultrasound pretreatments on the drying time and physicochemical characteristics of the zucchini chips. Annals of the Brazilian Academy of Sciences. 2022;94(3):e20210349. https://doi.org/10.1590/0001-3765202220210349

58. Wu X, Zhang M, Ye Y, Yu D. Influence of ultrasonic pretreatments on drying kinetics and quality attributes of sweet potato slices in infrared freeze drying (IRFD). LWT. 2020;131:109801. https://doi.org/10.1016/j.lwt.2020.109801

59. Dias da Silva G, Barros ZMP, de Medeiros RAB, de Carvalho CBO, Rupert Brandão SC, Azoubel PM. Pretreatments for melon drying implementing ultrasound and vacuum. LWT. 2016;74:114–119. https://doi.org/10.1016/j.lwt.2016.07.039

60. Ricce C, Rojas ML, Miano AC, Siche R, Augusto PED. Ultrasound pre-treatment enhances the carrot drying and rehydration. Food Research International. 2016;89:701–708. https://doi.org/10.1016/j.foodres.2016.09.030

61. Magalhães ML, Cartaxo SJM, Gallão MI, García-Pérez JV, Cárcel JA, Rodrigues S, et al. Drying intensification combining ultrasound pre-treatment and ultrasound-assisted air drying. Journal of Food Engineering. 2017;215:72–77. https://doi.org/10.1016/j.jfoodeng.2017.07.027

62. Kahraman O, Malvandi A, Vargas L, Feng H. Drying characteristics and quality attributes of apple slices dried by a non-thermal ultrasonic contact drying method. Ultrasonics Sonochemistry. 2021;73:105510. https://doi.org/10.1016/j.ultsonch.2021.105510

63. Anisimova KV, Porobova OB, Anisimov AB. Intensification of non-vacuum sublimation drying of fruit by sound field. Bulletin of Altai State Agricultural University. 2013;(2):103–106. (In Russ.). https://elibrary.ru/PWPVND

64. Oliveira FIP, Gallão MR, Rodrigues S, Fernandes FAN. Dehydration of malay apple (Syzygium malaccense L.) using ultrasound as pre-treatment. Food and Bioprocess Technology. 2010;4:610–615. https://doi.org/10.1007/s11947-010-0351-3

65. Kasatkin VV, Shumilova ISh. Continuous drying equipment for thermolabile materials. Food Industry. 2006;(10):12–13. (In Russ.). https://elibrary.ru/TLOYSX

66. Alvarez C, Ospina Corral S, Orrego C. Effects of ultrasound-assisted blanching on the processing and quality parameters of freeze-dried guava slices. Journal of Food Processing and Preservation. 2019;43. https://doi.org/10.1111/jfpp.14288

67. Chemat F, Zill-E-Huma, Khan MK. Applications of ultrasound in food technology: Processing, preservation and extraction. Ultrasonics Sonochemistry. 2011;18(4):813–835. https://doi.org/10.1016/j.ultsonch.2010.11.023

68. Huang D, Men K, Li D, Wen T, Gong Z, Sunden B, et al. Application of ultrasound technology in the drying of food products. Ultrasonics Sonochemistry. 2020;63:104950. https://doi.org/10.1016/j.ultsonch.2019.104950

69. Anisimova KV, Porobova OB, Anisimov AB. Intensification of non-vacuum sublimation drying of fruit by sound field. Bulletin of Altai State Agricultural University. 2013;(2):103–106. (In Russ.). https://elibrary.ru/PWPVND

70. Zhang C, Lyu X, Arshad RN, Aadil RM, Tong Y, Zhao W, et al. Pulsed electric field as a promising technology for solid foods processing: A review. Food Chemistry. 2023;403:134367. https://doi.org/10.1016/j.foodchem.2022.134367

71. Gudmundsson M, Hafsteinsson H. Effect of high-intensity electric field pulses on solid foods. In: Sun D-W, editor. Emerging technologies for food processing. Academic Press; 2014. pp. 147–153. https://doi.org/10.1016/B978-012676757-5/50008-6

72. Demir E, Tappi S, Dymek K, Rocculi P, Gómez GF. Reversible electroporation caused by pulsed electric field – Opportunities and challenges for the food sector. Trends in Food Science and Technology. 2023;139:104120. https://doi.org/10.1016/j.tifs.2023.104120

73. Genovese J, Kranjc M, Serša I, Petracci M, Rocculi P, Miklavčič D, et al. PEF-treated plant and animal tissues: Insights by approaching with different electroporation assessment methods. Innovative Food Science and Emerging Technologies. 2021;74:102872. https://doi.org/10.1016/j.ifset.2021.102872

74. Raso J, Heinz V, Alvarez I, Toepfl S. Pulsed electric fields technology for the food industry. Fundamentals and applications. Cham: Springer; 2022. 561 p. https://doi.org/10.1007/978-3-030-70586-2

75. Lammerskitten A, Wiktor A, Mykhailyk V, Samborska K, Gondek E, Witrowa-Rajchert D, et al. Pulsed electric field pre-treatment improves microstructure and crunchiness of freeze-dried plant materials: Case of strawberry. LWT. 2020;134:110266. https://doi.org/10.1016/j.lwt.2020.110266

76. Fauster T, Giancaterino M, Pittia P, Jaeger H. Effect of pulsed electric field pretreatment on shrinkage, rehydration capacity and texture of freeze-dried plant materials. LWT. 2020;121:108937. https://doi.org/10.1016/j.lwt.2019.108937

77. Donsì F, Ferrari G, Maresca P, Pataro G. Effects of emerging technologies on food quality. In: Medina DA, Laine AM, editors. Food quality: Control, analysis and consumer concerns. Hauppauge: Nova Science Publishers; 2011. pp. 505–554.

78. Lammerskitten A, Wiktor A, Siemer C, Toepfl S, Mykhailyk V, Gondek E, et al. The effects of pulsed electric fields on the quality parameters of freeze-dried apples. Journal of Food Engineering. 2019;252:36–43. https://doi.org/10.1016/j.jfoodeng.2019.02.006

79. Witrowa-Rajchert D, Lewicki PP. Rehydration properties of dried plant tissues. International Journal of Food Science and Technology. 2006;41(9):1040–1046. https://doi.org/10.1111/j.1365-2621.2006.01164.x

80. Parniakov O, Bals O, Lebovka N, Vorobiev E. Pulsed electric field assisted vacuum freeze-drying of apple tissue. Innovative Food Science and Emerging Technologies. 2016;35:52–57. https://doi.org/10.1016/j.ifset.2016.04.002

81. Tylewicz U, Aganovic K, Vannini M, Toepfl S, Bortolotti V, Dalla Rosa M, et al. Effect of pulsed electric field treatment on water distribution of freeze-dried apple tissue evaluated with DSC and TD-NMR techniques. Innovative Food Science and Emerging Technologies. 2016;37:352–358. https://doi.org/10.1016/j.ifset.2016.06.012

82. Wu Y, Guo Y. Experimental study of the parameters of high pulsed electrical field pretreatment to fruits and vegetables in vacuum freeze-drying. In: Li D, Liu Y, Chen Y, et al. Computer and computing technologies in agriculture IV. Heidelberg: Springer Berlin; 2011. pp. 691–697. https://doi.org/10.1007/978-3-642-18333-1_83

83. Faridnia F, Burritt DJ, Bremer PJ, Oey I. Innovative approach to determine the effect of pulsed electric fields on the microstructure of whole potato tubers: Use of cell viability, microscopic images and ionic leakage measurements. Food Research International. 2015;77:556–564. https://doi.org/10.1016/j.foodres.2015.08.028

84. Liu C, Grimi N, Lebovka N, Vorobiev E. Effects of pulsed electric fields treatment on vacuum drying of potato tissue. LWT. 2018;95:289–294. https://doi.org/10.1016/j.lwt.2018.04.090

85. Toepfl S, Heinz V, Knorr D. High intensity pulsed electric fields applied for food preservation. Chemical Engineering and Processing: Process Intensification. 2007;46(6):537–546. https://doi.org/10.1016/j.cep.2006.07.011

86. Toepfl S, Siemer C, Saldaña-Navarro G, Heinz V. Overview of pulsed electric fields processing for food. In: Sun D-W, editor. Emerging technologies for food processing. Academic Press; 2014. pp. 93–114. https://doi.org/10.1016/B978-0-12-411479-1.00006-1

87. Moens LG, van Wambeke J, de Laet E, van Ceunebroeck J-C, Goos P, van Loey AM, et al. Effect of postharvest storage on potato (Solanum tuberosum L.) texture after pulsed electric field and thermal treatments. Innovative Food Science and Emerging Technologies. 2021;74:102826. https://doi.org/10.1016/j.ifset.2021.102826

88. Jalté M, Lanoisellé J-L, Lebovka NI, Vorobiev E. Freezing of potato tissue pre-treated by pulsed electric fields. LWT – Food Science and Technology. 2009;42(2):576–580. https://doi.org/10.1016/j.lwt.2008.09.007

89. Using pulsed electric field (PEF) in potato production [Internet]. [cited 2023 Dec 10]. Available from: https://potatosystem.ru/ispolzovanie-impulsnogo-elektricheskogo

90. Hassoun A, Jagtap S, Trollman H, Garcia-Garcia G, Abdullah NA, Goksen G, et al. Food processing 4.0: Current and future developments spurred by the fourth industrial revolution. Food Control. 2023;145:109507. https://doi.org/10.1016/j.foodcont.2022.109507


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